Simple Floating Ocean Wave Energy Converter: Developing Teaching Media to Communicating Alternative Energy

Authors

  • Muhammad Satriawan Universitas Negeri Surabaya
  • Rosmiati Rosmiati STKIP Bima

DOI:

https://doi.org/10.26740/jpps.v12n1.p1-13

Keywords:

Alternative energy, Ocean wave energy converter, Teaching media, Technology

Abstract

Research aims to develop teaching media in communicating alternative energy to students who are in high school. The teaching media developed as a prototype converter of ocean wave energy into electrical energy. This Converter is focused on helping students understand concepts and technologies in utilizing ocean wave energy as an alternative energy source. The development stage adopted the ADDIE model, which is limited to the analysis, design, and development stages. The data obtained are in the form of design validation data, trial data, and product assessment data. The data were analyzed using descriptive statistics. Based on the results of data analysis, it is found that (1) the converter design is feasible to be developed with a few additions to the transmission section to produce higher RPM; (2) the resulting converter functions correctly with the output voltage of 5 to 9 volts in the artificial wave pool test and reaches 8 to 12 volts; (3) for product assessment, it was found that the Converter produced was suitable to be used as a teaching medium to communicate concepts and technology in utilizing ocean wave energy as an alternative energy source. So, teaching media in the form of a wave energy converter could be used as an alternative to communicating the concept of using ocean waves as an alternative energy source. The implication of this research is that it can be used as a model or initial example in developing learning media related to alternative energy and can even be used as a model in developing converters on a larger scale so that the wider community can use them.

Downloads

Download data is not yet available.

References

Akitsu, Y., & Ishihara, K. N. (2018). An integrated model approach: Exploring the energy literacy and values of lower secondary students in Japan. International Journal of Educational Methodology, 4(3), 161-186. https://doi.org/10.12973/ijem.4.3.161

Amarulloh, A., & Dzakiria, H. (2021). Development and validation of chemistry learning videos as learning media in the era of the COVID-19 pandemic. Journal of Sustainability Science and Technology, 1(2), 80-88. https://doi.org/10.23960/josst.v1i2.12

Ambre, R. P., Sathe, D. S., & Pangat, A. S. (2019). Design And fabrication of contactless energy generation system with flywheel. International Journal of Innovations in Engineering Research and Technology, 6(3), 1-5.

Bakri, F., Rodhiyah, A., Nurindrasari, M., Pratiwi, S., & Muliyati, D. (2020). The design of physics learning video as joyful-based learning media enrichment by powtoon. Journal of Physics: Conference Series, 1491(1), 1-5. https://doi.org/10.1088/1742-6596/1491/1/012061

Bamisile, O., Huang, Q., Dagbasi, M., Alowolodu, O., & Williams, N. (2020). Development and assessment of renewable energy–integrated multigeneration system for rural communities in Nigeria: Case study. Journal of Energy Engineering, 146(3), 1-11. https://doi.org/10.1061/(ASCE)EY.1943-7897.0000656

Bhat, A., Borbale, S., & Joshi, S. H. (2019). Contactless energy generation using flywheel. Methodology, 6(6), 38-44.

Hassan, B. S. A. (2018). Content validity of STEMTIP using CVR method. International Journal Academic Research Business and Social Science, 8(3), 1118-1125. http://dx.doi.org/10.6007/IJARBSS/v8-i7/4559

Bodzin, A. M., Fu, Q., Peffer, T. E., & Kulo, V. (2013). Developing energy literacy in US middle-level students using the geospatial curriculum approach. International Journal of Science Education, 35(9), 1561-1589. http://dx.doi.org/10.1080/09500693.2013.769139

Chen, K. L., Huang, S. H., & Liu, S. Y. (2013). Devising a framework for energy education in taiwan using the analytic hierarchy process. Energy policy, 55, 396-403. http://dx.doi.org/10.1016/j.enpol.2012.12.025

Dangkua, T., Mooduto, Y., & Tilome, A. (2022). Energy literacy education characteristics in gorontalo city, indonesia: Cognitive scale. Journal La Lifesci, 3(2), 82-91. https://doi.org/10.37899/journallalifesci.v3i2.608

Dwitiyanti, N., Kumala, S. A., & Widiyatun, F. (2020). Using the ADDIE model in the development of physics unit conversion application based on Android as learning media. Formatif: Jurnal Ilmiah Pendidikan MIPA, 10(2), 125-132. http://dx.doi.org/10.30998/formatif.v10i2.5933

Gladwin, D., Karsgaard, C., & Shultz, L. (2022). Collaborative learning on energy justice: International youth perspectives on energy literacy and climate justice. The Journal of Environmental Education, 53(5), 1-10. http://dx.doi.org/10.1080/00958964.2022.2113019

Grivokostopoulou, F., Perikos, I., Kovas, K., & Hatzilygeroudis, I. (2016). Learning approaches in a 3D virtual environment for learning energy generation from renewable sources. The Twenty-Ninth International Flairs Conference, 497-501.

Guo, S., Liu, Q., Sun, J., & Jin, H. (2018). A review on the utilization of hybrid renewable energy. Renewable and Sustainable Energy Reviews, 91(2), 1121-1147. http://dx.doi.org/10.1016/j.rser.2018.04.105

Handayani, A. A. P., Mujdalipah, S., & Sugiarti, Y. (2022). Development of android-based learning media to determine digital literacy at public vocational high school. Journal of Research and Innovation in Open and Distance Learning, 1(1), 36-46.

Hasan, A., Sakdiyah, S., Mustofa, A., & Tuzzahra, R. (2021). The development of rainbow spin learning media in social sciences: ADDIE development model. Proceedings of AICS-Social Sciences, 11, 229-233.

Karpudewan, M., & Ponniah, J. (2016). Project-based learning: An approach to promote energy literacy among secondary school students. The Asia-Pacific Education Researcher, 25(2), 229-237.

Kristanto, A., & Mariono, A. (2019). Development of education game media for xii multimedia class students in vocational school. Journal of Physics: Conference Series, 1387(1), 1-6. http://dx.doi.org/10.1088/1742-6596/1387/1/012117

Lowan-Trudeau, G., & Fowler, T. A. (2022). Towards a theory of critical energy literacy: The Youth Strike for Climate, renewable energy and beyond. Australian Journal of Environmental Education, 38(1), 58-68. http://dx.doi.org/10.1017/aee.2022.13

Lubis, S., Lubis, F., & Harahap, P. (2019). PLTB sebagai alternatif energi baru terbarukan. Seminar Nasional Teknik Industri, 4(1), 1-10.

Moretti, G., Papini, G. P. R., Righi, M., Forehand, D., Ingram, D., Vertechy, R., & Fontana, M. (2018). Resonant wave energy harvester based on dielectric elastomer generator. Smart Materials and Structures, 27(3), 1-14. http://dx.doi.org/10.1088/1361-665X/aaab1e

Perkins, N. R., Hosack, G. R., Foster, S. D., Monk, J., & Barrett, N. S. (2020). Monitoring the resilience of a no-take marine reserve to a range extending species using benthic imagery. PloS one, 15(8), 237-247. https://doi.org/10.1371/journal.pone.0237257

Putra, A., Joditiadhi, A., & Qiram, I. (2021). Pengaruh jumlah ulir dan kekasaran permukaan terhadap kinerja turbin ulir mikro hidro. G-Tech: Jurnal Teknologi Terapan, 4(2), 326-333. http://dx.doi.org/10.33379/gtech.v4i2.614

Radulović, B., Dorocki, M., Džinović, M., & Stojanović, M. (2021). Project-based learning as strategies for improving students energy literacy. EDULEARN21 Proceedings. International Academy of Technology, Education and Development (IATED), 2548-2553. https://dx.doi.org/10.21125/edulearn.2021.0555

Ramadhan, A. R. A. (2022). Process production grass cutter based lithium battery. International Journal Science and Technology, 1(1), 12-18. https://doi.org/10.56127/ijst.v1i1.2

Ranuharja, F., Ganefri, G., Fajri, B. R., Prasetya, F., & Samala, A. D. (2021). Development of interactive learning media edugame using ADDIE model. Jurnal Teknologi Informasi Dan Pendidikan, 14(1), 53-59. https://doi.org/10.24036/tip.v14i1.412

Riyanto, F., Fahruddin, A., & Belo, E. T. (2022). The effect of variations in impeller shape on discharge and water pressure on the pump prototype. REM (Rekayasa Energi Manufaktur) Jurnal, 7(1), 35-39. https://doi.org/10.21070/r.e.m.v7i1.1632

Rizal, A. M., & Ningsih, N. S. (2020). Ocean wave energy potential along the west coast of the Sumatra island, Indonesia. Journal of Ocean Engineering and Marine Energy, 6(2), 137-154. https://doi.org/10.1007/s40722-020-00164-w

Rohmatulloh, R., Hasanah, A., Syah, M., & Natsir, N. F. (2021). Energy literacy and education: The viewpoint of stakeholders to promote energy literacy in education. E3S Web of Conferences, 317(1), 1-10. https://doi.org/10.33116/ije.v5i2.113

Ryu, H., Yoon, H. J., & Kim, S. W. (2019). Hybrid energy harvesters: Toward sustainable energy harvesting. Advanced Materials, 31(34), 1-19. https://doi.org/10.1002/adma.201802898

Satriawan, M., Liliasari, L., Setiawan, W., & Abdullah, A. G. (2020). Low-cost ocean wave energy converter kit as a teaching tool of a new alternative energy source. Physics Education, 55(5), 1-7. https://doi.org/10.1088/1361-6552/ab9b35

Satriawan, M., Liliasari, L., Setiawan, W., & Abdullah, A. G. (2021). Unlimited energy source: a review of ocean wave energy utilization and its impact on the environment. Indonesian Journal of Science and Technology, 6(1), 1-16. https://doi.org/10.17509/ijost.v6i1.31473

Shahbaz, M., Raghutla, C., Chittedi, K. R., Jiao, Z., & Vo, X. V. (2020). The effect of renewable energy consumption on economic growth: Evidence from the renewable energy country attractive index. Energy, 207(1), 1-40. https://doi.org/10.1016/j.energy.2020.118162

Shaqsi, A. Z. A., Sopian, K., & Al-Hinai, A. (2020). Review of energy storage services, applications, limitations, and benefits. Energy Reports, 6(1), 288-306. https://doi.org/10.1016/j.egyr.2020.07.028

Singh, U., Abdussamie, N., & Hore, J. (2020). Hydrodynamic performance of a floating offshore OWC wave energy converter: An experimental study. Renewable and Sustainable Energy Reviews, 117(1), 1-18. https://doi.org/10.1016/j.rser.2019.109501

Susanti, N., Yennita, Y., & Azhar, A. (2020). Development of contextual based electronic global warming modules using flipbook applications as physics learning media in high schools. Journal of Educational Sciences, 4(3), 541-559. http://dx.doi.org/10.31258/jes.4.3.p.541-559

Sutadji, E. (2020). Interactive Multimedia Development Engine Management System (Ems) Using The Addie Model. PalArch's Journal of Archaeology of Egypt/Egyptology, 17(4), 609-629. https://doi.org/10.48080/jae.v17i4.396

Thahlil, C. N., & Singgih, M. L. (2022). Determination of factors and location of wave power generating for islands in indonesia. Proceedings of the International Conference on Industrial Engineering and Operations Management, 1-10.

Van der Horst, D., Harrison, C., Staddon, S., & Wood, G. (2016). Improving energy literacy through student-led fieldwork–at home. Journal of Geography in Higher Education, 40(1), 67-76. https://doi.org/10.1080/03098265.2015.1089477

Waluya, S. B., & Suyitno, H. (2019). Development of 3CM (cool-critical-creative-meaningful) learning model to increase creative thinking skill. Journal of Physics: Conference Series, 1321(2), 1-9. https://doi.org/10.1088/1742-6596/1321/2/022063

Welsby, D., Price, J., Pye, S., & Ekins, P. (2021). UnextracTable fossil fuels in a 1.5 C world. Nature, 597(1), 230-234. https://doi.org/10.1038/s41586-021-03821-8

Zamora-Polo, F., & Sánchez-Martín, J. (2019). Teaching for a better world: Sustainability and sustainable development goals in the construction of a change-maker university. Sustainability, 11(15), 1-15. https://doi.org/10.3390/su11154224

Zhang, D., Shi, J., Si, Y., & Li, T. (2019). Multi-grating triboelectric nanogenerator for harvesting low-frequency ocean wave energy. Nano Energy, 61, 132-140. https://doi.org/10.1016/j.nanoen.2019.04.046

Zhao, X., & Luo, D. (2018). Forecasting fossil energy consumption structure toward low-carbon and sustainable economy in China: Evidence and policy responses. Energy strategy reviews, 22, 303-312. https://doi.org/10.1016/j.esr.2018.10.003

Downloads

Published

2022-11-27

How to Cite

Satriawan, M., & Rosmiati, R. (2022). Simple Floating Ocean Wave Energy Converter: Developing Teaching Media to Communicating Alternative Energy. JPPS (Jurnal Penelitian Pendidikan Sains), 12(1), 1–13. https://doi.org/10.26740/jpps.v12n1.p1-13

Issue

Section

Articles
Abstract views: 279 , PDF Downloads: 263